The first experimental demonstration of phase-adaptive feedback cooling of silica nanoparticles in a hollow-core photonic crystal fiber, reducing axial center-of-mass temperature by half at 2 mbar and to 58.6 K at 0.5 mbar.
Viscoelastic dynamics of nanoparticles optically trapped in moving fringe pattern in air-filled hollow-core fiber
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abstract
We report optical trapping and transport of nanoparticles in a moving interference pattern in hollow-core photonic crystal fiber at atmospheric pressure, when competition between trapping and drag forces causes the particle velocity to oscillate as it is momentarily captured and accelerated by each passing fringe, followed by release and deceleration by viscous forces. As a result the average particle velocity is lower than the fringe velocity. We refer to this phenomenon as drag-trapping. An analytical model of the resulting motion shows excellent agreement with experiment. Additional control is possible by introducing an imbalance in the backward and forward powers. The high precision of this new technique makes it of interest for example in characterizing nanoparticles, exploring viscous drag forces in different gases and liquids, and temperature sensing.
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Phase-adaptive cooling of fringe-trapped nanoparticles at room temperature in hollow-core photonic crystal fiber
The first experimental demonstration of phase-adaptive feedback cooling of silica nanoparticles in a hollow-core photonic crystal fiber, reducing axial center-of-mass temperature by half at 2 mbar and to 58.6 K at 0.5 mbar.